A dismountable dart target
Patent Information
- Application Number
- CN202522443379.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-11-18
- Publication Date
- 2026-09-18
- Estimated Expiration
- 2035-11-18
AI Technical Summary
[0005]本实用新型的目的在于提供一种拆卸式飞镖靶,解决了现有带支撑架的飞镖靶因其靶盘与支架固结为一体而导致的无法根据使用场景需求,快速在悬挂使用与支架支撑使用两种模式间灵活切换的技术问题
[0012]This utility model discloses a detachable dartboard, which effectively solves the problem of inconvenient mode switching by designing the target plate as an independent module that can be quickly separated from the main support. Its core lies in the cooperation between the guide grooves on the upper and lower outer circumference of the target plate and the guide block fixedly installed in the groove on one side of the assembly plate, ensuring accurate alignment and stable insertion of the target plate during installation. The soft magnetic material built into the target plate, combined with the assembly plate made of magnetically attractable material, generates sufficient magnetic attraction force to keep the target plate firmly in the groove, ensuring stability during throwing. When it is necessary to remove the target plate from the support, the user only needs to apply force through the latches on both sides of the assembly plate that are connected to the groove to easily overcome the magnetic force and detach the target plate, converting it to suspension mode. The entire target plate module is connected to the fixing block on the other side of the assembly plate, achieving reliable fixation and separation from the support body. This structure allows users to easily switch between a stable support mode and a convenient suspension mode without the need for any tools, realizing the diversified application of a single target plate.
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Figure CN224772175U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of dartboard technology, and in particular to a detachable dartboard. Background Technology
[0002] The most common way to secure a traditional home dartboard is by using the built-in lanyard on the back to hang it on a pre-installed hook on the wall or a protrusion behind a door. While simple, this method has significant limitations: once the location is set, it's difficult to move. If a user wants to throw from different rooms or different locations within the same room, they must reinstall the hook in the new location. This process is not only tedious but also causes repeated drilling damage to the wall, compromising ease of use and the tidiness of the home environment.
[0003] To overcome the rigidity of fixed placement in suspended dartboards, dartboards with independent support structures have emerged on the market. These products typically include a base and a vertical rod, with the target plate directly fixed to the top of the support structure using screws or clips. This method effectively frees the dartboard from the constraints of the wall, making it a movable, independent entity. Users can easily move it throughout the space as needed, and even store it, thus solving the technical problem of the inflexibility of changing the throwing position in traditional methods.
[0004] However, while this support structure solves the mobility problem, it introduces a new drawback: it tightly binds the target plate and the support into a single unit. This permanent or semi-permanent connection makes it difficult to quickly and easily detach the target plate from the support. This leads to a new contradiction—users cannot flexibly choose the usage method according to actual needs. For example, when users travel or want to use it outdoors, they may prefer to carry only the lightweight target plate and hang it on natural objects such as tree branches, but the heavy overall support becomes a burden; conversely, when using it at home, they need a stable support. The existing integrated structure cannot meet this diverse need for "one target, multiple uses," because it lacks a simple switching mechanism between the target plate and the support structure that can both ensure a stable connection and achieve quick separation. Utility Model Content
[0005] The purpose of this invention is to provide a detachable dartboard, which solves the technical problem that existing dartboards with support frames cannot flexibly switch between suspended use and support use modes according to the needs of the usage scenario because the target plate and the support frame are fixed together.
[0006] To achieve the above objectives, this utility model provides a detachable dartboard, including a target plate. The target plate has guide grooves at the top and bottom of its outer periphery. The target plate contains a soft magnetic material embedded in the embedding groove. The embedding groove is located on one side of the assembly plate. Guide blocks are fixedly installed at the top and bottom of the embedding groove. The guide blocks are embedded in the guide groove. The assembly plate is made of a magnetically attractable material, and its outer two sides are provided with snap grooves that communicate with the embedding groove. The other side of the assembly plate is connected to the fixing block by bolts.
[0007] The fixed block has a telescopic rod fixedly installed at its bottom end. The bottom end of the telescopic rod is telescopically installed inside the telescopic sleeve rod and fixed with bolts. A sliding disc is slidably provided on the upper outer side of the telescopic sleeve rod and fixed with bolts.
[0008] The sliding disk has three first rotating blocks installed at intervals on its outer periphery, and two first rotating clamping plates are respectively installed on the outer side of the first rotating blocks via pins.
[0009] In this configuration, two first rotating clamps are symmetrically installed at the top of the diagonal brace, the bottom ends of the diagonal brace are rounded, and a second rotating block is fixedly installed in the middle of the diagonal brace.
[0010] Two second rotating clamping plates are respectively installed on the outer side of the second rotating block by pins, and each pair of second rotating clamping plates is symmetrically installed at both ends of the connecting rod.
[0011] The second rotating clamp at the other end of the connecting rod is mounted on the outside of the third rotating block by a pin. The third rotating block is mounted at intervals on the outer periphery of the fixed plate. The fixed plate is fixed through the bottom end of the telescopic sleeve rod.
[0012] This utility model discloses a detachable dartboard, which effectively solves the problem of inconvenient mode switching by designing the target plate as an independent module that can be quickly separated from the main support. Its core lies in the cooperation between the guide grooves on the upper and lower outer circumference of the target plate and the guide block fixedly installed in the groove on one side of the assembly plate, ensuring accurate alignment and stable insertion of the target plate during installation. The soft magnetic material built into the target plate, combined with the assembly plate made of magnetically attractable material, generates sufficient magnetic attraction force to keep the target plate firmly in the groove, ensuring stability during throwing. When it is necessary to remove the target plate from the support, the user only needs to apply force through the latches on both sides of the assembly plate that are connected to the groove to easily overcome the magnetic force and detach the target plate, converting it to suspension mode. The entire target plate module is connected to the fixing block on the other side of the assembly plate, achieving reliable fixation and separation from the support body. This structure allows users to easily switch between a stable support mode and a convenient suspension mode without the need for any tools, realizing the diversified application of a single target plate. Attached Figure Description
[0013] To more clearly illustrate the technical solutions in the embodiments of this application or the prior art, the accompanying drawings used in the description of the embodiments or the prior art will be briefly introduced below.
[0014] Figure 1 This is a schematic diagram of the overall structure of an embodiment of the present utility model.
[0015] Figure 2 This is a schematic diagram of the assembly tray in an embodiment of the present invention.
[0016] Figure 3 This is a schematic diagram of the structure of the fixing block in an embodiment of this utility model.
[0017] Figure 4 This is an embodiment of the present utility model. Figure 3 Enlarged diagram of point A in the middle.
[0018] In the diagram: 101, target plate; 102, guide groove; 103, embedding groove; 104, assembly plate; 105, guide block; 106, snap groove; 107, fixing block; 108, telescopic rod; 109, telescopic sleeve rod; 110, sliding plate; 111, first rotating block; 112, first rotating clamping plate; 113, diagonal brace; 114, second rotating block; 115, second rotating clamping plate; 116, connecting rod; 117, third rotating block; 118, fixing plate. Detailed Implementation
[0019] The embodiments of the present invention are described in detail below. Examples of the embodiments are shown in the accompanying drawings. The embodiments described below with reference to the accompanying drawings are exemplary and intended to explain the present invention, but should not be construed as limiting the present invention.
[0020] Please see Figures 1-4 .
[0021] This utility model provides a detachable dartboard, including a target plate 101. Guide grooves 102 are respectively formed at the upper and lower parts of the outer periphery of the target plate 101 to guide the installation direction. A soft magnetic material is built into the target plate 101, allowing it to be magnetically attracted. The target plate 101 is embedded in an embedding groove 103 on one side of an assembly plate 104. Guide blocks 105 are fixedly installed at the upper and lower parts of the embedding groove 103. These guide blocks 105 are precisely embedded into the guide grooves 102 of the target plate 101 during installation, ensuring that the target plate 101 is installed in the correct orientation and is properly aligned with the assembly plate. The assembly plate 104 remains flat and fits snugly. The assembly plate 104 is made of a magnetically attractive material, which cooperates with the soft magnetic material inside the target plate 101 to achieve a firm fixation of the target plate 101 through magnetic attraction. The outer periphery of the assembly plate 104 is provided with locking grooves 106 on both sides. These locking grooves 106 are connected to the embedding grooves 103 and provide a force application point. The user can easily apply force by pressing their fingers into these grooves to overcome the magnetic attraction and thus remove the target plate 101 from the embedding grooves 103. The other side of the assembly plate 104 is connected to a fixing block 107 by bolts. This connection method provides a firm mechanical connection.
[0022] A telescopic rod 108 is fixedly installed at the bottom of the fixed block 107. The bottom end of the telescopic rod 108 is telescopically installed inside the telescopic sleeve rod 109 and fixed by bolts. This structure enables flexible adjustment of the height of the dartboard body. A sliding disk 110 is slidably arranged on the upper outer side of the telescopic sleeve rod 109. The sliding disk 110 can be fixed to different height positions of the telescopic sleeve rod 109 by bolts. The change of its position is the key to driving the support structure to unfold or retract. Three first rotating blocks 111 are installed at intervals on the outer periphery of the sliding disk 110. Two first rotating clamps 112 are respectively installed on the outer side of each first rotating block 111 through pins. The pin connection provides rotational freedom.
[0023] Two first rotating clamping plates 112 are symmetrically installed at the top of a diagonal brace 113. The rotation of the first rotating clamping plate 112 can be converted into a pushing and pulling action on the diagonal brace 113. The bottom end of the diagonal brace 113 is designed with rounded corners to reduce friction and resistance with the ground during unfolding and retraction. Two second rotating blocks 114 are fixedly installed in the middle of the diagonal brace 113. Two second rotating clamping plates 115 are installed on the outer side of the second rotating blocks 114 through pins, forming another rotating pair. Two second rotating clamping plates 115 are symmetrically installed at both ends of a connecting rod 116. The connecting rod 116 plays the role of linkage and force transmission.
[0024] The second rotating clamping plate 115 at the other end of the connecting rod 116 is installed on the outside of the third rotating block 117 by a pin. The third rotating block 117 is installed at intervals on the outer periphery of a fixed plate 118. The fixed plate 118 is fixed through the bottom end of the telescopic sleeve rod 109, providing a final stable base for the entire support structure. When the sliding plate 110 moves downward along the telescopic sleeve rod 109 and is fixed, it will drive the first rotating clamping plate 112 to rotate, thereby pushing the top of the diagonal brace 113 to move outward and downward. The second rotating block 114 in the middle of the diagonal brace 113 moves accordingly, and through the linkage of the second rotating clamping plate 115, the connecting rod 116 and the third rotating block 117, all the diagonal braces 113 are forced to unfold outward synchronously and stably, finally forming a reliable triangular support structure, which greatly enhances the stability of the dartboard when it is standing.
[0025] Working principle: The target plate 101 is fitted with guide blocks 105 fixedly installed in the embedding groove 103 on one side of the assembly plate 104 through guide grooves 102 on the upper and lower parts of its outer periphery. This guide structure ensures that the target plate 101 can be accurately embedded in the predetermined path. At the same time, the soft magnetic material inside the target plate 101 generates a strong magnetic attraction between it and the assembly plate 104, which is made of magnetically attractable material. This makes the target plate 101 firmly attracted and fixed in the embedding groove 103, realizing quick installation and stable retention without additional tools. The buckle grooves 106 on both sides of the outer periphery of the embedding groove 103 are connected to the embedding groove 103. This design allows the user to insert their fingers into the buckle grooves 106 to apply force, thereby overcoming the magnetic attraction and prying the target plate 101 out of the embedding groove 103. This completes the convenient disassembly of the target plate 101, so that the target plate 101 can be installed on the bracket or used by hanging it directly with its own hanging rope.
[0026] The other side of the assembly plate 104 is firmly connected to the fixing block 107 by bolts, forming a complete target support unit. The telescopic rod 108, which is fixedly installed at the bottom of the fixing block 107, can be inserted into the telescopic sleeve 109 for telescopic movement and is fixed by bolts, thereby realizing flexible adjustment of the overall height of the dart target. A sliding plate 110 is slidably arranged on the upper outer side of the telescopic sleeve 109, and the sliding plate 110 can also be fixed at any height position of the telescopic sleeve 109 by bolts. Three first rotating blocks 111 are installed at intervals on the outer periphery of the sliding plate 110, and two first rotating clamps 112 are respectively installed on the outer side of each first rotating block 111 by pins.
[0027] When the support needs to be deployed to increase stability, the sliding plate 110 is moved downwards and its position is fixed. The downward movement of the sliding plate 110 pushes the first rotating clamp 112 through the first rotating block 111, causing the first rotating clamp 112 to rotate around the pin. Each pair of first rotating clamps 112 is symmetrically installed at the top of the diagonal brace 113, so the rotation of the first rotating clamp 112 is converted into a thrust on the top of the diagonal brace 113. The bottom end of the diagonal brace 113 is designed with rounded corners to reduce frictional resistance during movement. The middle part of the diagonal brace 113 is fixedly installed with a second rotating block 114, and two second rotating clamps 115 are installed on the outer side of the second rotating block 114 through pins. Each pair of second rotating clamps 115 is symmetrically installed at both ends of the connecting rod 116.
[0028] When the diagonal brace 113 is pushed outward, the second rotating block 114 in its middle moves accordingly, causing the second rotating clamping plate 115 to rotate around the pin. The second rotating clamping plate 115 at the other end of the connecting rod 116 is connected to the third rotating block 117 through the pin. The third rotating block 117 is installed at intervals on the outer periphery of the fixed plate 118, and the fixed plate 118 is fixed through the bottom end of the telescopic sleeve 109. Therefore, the unfolding movement of the diagonal brace 113 is finally transmitted to the third rotating block 117 on the fixed plate 118 through the connecting rod 116, so that the three diagonal braces 113 unfold outward and downward synchronously and smoothly, forming a stable triangular support structure, which greatly enhances the anti-tipping ability of the entire dartboard during use. The entire working process reflects the multi-component collaborative mechanism from magnetic fixation, sliding extension and retraction to linkage rotation, which together achieves the technical effects of easy disassembly and replacement, flexible height adjustment and reliable support.
[0029] The above-disclosed embodiments are merely one or more preferred embodiments of this application and should not be construed as limiting the scope of this application. Those skilled in the art can understand that all or part of the processes for implementing the above embodiments and equivalent changes made in accordance with the claims of this application still fall within the scope of this application.
Claims
1. A dismountable dartboard comprising a target disc (101), characterized in that: The target disk (101) has guide grooves (102) at the top and bottom of its outer periphery. The target disk (101) has a soft magnetic material embedded in the embedding groove (103). The embedding groove (103) is located on one side of the assembly disk (104). Guide blocks (105) are fixedly installed at the top and bottom of the embedding groove (103). The guide blocks (105) are embedded in the guide groove (102). The assembly disk (104) is made of a magnetically attracted material, and its outer periphery has fastening grooves (106) on both sides that are connected to the embedding groove (103). The other side of the assembly disk (104) is connected to the fixing block (107) by bolts.
2. A detachable dartboard as described in claim 1, characterized in that: The bottom end of the fixed block (107) is fixedly installed with a telescopic rod (108). The bottom end of the telescopic rod (108) is telescopically installed inside the telescopic sleeve rod (109) and fixed with bolts. A sliding disc (110) is slidably provided on the upper outer side of the telescopic sleeve rod (109) and fixed with bolts.
3. A demountable dartboard according to claim 2, wherein: Three first rotating blocks (111) are installed at intervals on the outer periphery of the sliding disk (110), and two first rotating clamping plates (112) are respectively installed on the outer side of the first rotating blocks (111) by means of pins.
4. A demountable dartboard according to claim 3, wherein: Two first rotating clamps (112) are symmetrically installed at the top of the diagonal brace (113), the bottom ends of the diagonal brace (113) are rounded, and the middle part of the diagonal brace (113) is fixedly installed with a second rotating block (114).
5. A demountable dartboard according to claim 4, wherein: Two second rotating clamping plates (115) are respectively installed on the outer side of the second rotating block (114) by pins, and each pair of second rotating clamping plates (115) are symmetrically installed at both ends of the connecting rod (116).
6. A demountable dartboard according to claim 5, wherein: The second rotating clamp (115) at the other end of the connecting rod (116) is respectively installed on the outside of the third rotating block (117) by a pin. The third rotating block (117) is respectively installed at intervals on the outer periphery of the fixed plate (118). The fixed plate (118) is fixed through the bottom end of the telescopic sleeve rod (109).